One Flash in the Xenon: The Dark Matter Event Nobody Can Explain
Astronomy Daily: Space News September 04, 2026x
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One Flash in the Xenon: The Dark Matter Event Nobody Can Explain

AnnaAnnaHost
Links & sources Brown University — LZ experiment sees surprising result in search for dark matter — https://www.brown.edu/news/2026-09-01/lz-dark-matter-results US Department of Energy — LZ Sees Surprising Result in Search for Dark Matter — https://www.energy.gov/science/articles/lz-sees-surprising-result-search-dark-matter Imperial College London — Dark matter hunt takes unexpected turn after puzzling signal spotted in LZ detector — https://www.imperial.ac.uk/news/articles/natural-sciences/physics/2026/dark-matter-hunt-takes-unexpected-turn-after-puzzling-signal-spotted-in-lz-detector/ TeVPA 2026 — Search for high-energy dark matter interactions with the LUX-ZEPLIN experiment — https://indico-icehap.phys.s.chiba-u.ac.jp/event/3/contributions/471/ The LZ Dark Matter Experiment — collaboration site — https://lz.lbl.gov/ Space.com — Scientists may have detected the 1st direct evidence of dark matter — https://www.space.com/astronomy/dark-universe/scientists-may-have-detected-the-1st-direct-evidence-of-dark-matter ARC Centre of Excellence for Dark Matter Particle Physics — Stawell Underground Physics Laboratory — https://www.centredarkmatter.org/supl SABRE South — dark matter direct-detection experiment — https://www.sabre-experiment.org.au/ Phys.org — Underground lab clears crucial hurdle for dark matter hunt — https://phys.org/news/2026-04-underground-lab-crucial-hurdle-dark.html Space.com — India sends Earth-imaging satellite toward geosynchronous orbit in milestone launch — https://www.space.com/space-exploration/launches-spacecraft/gslv-mark-ii-eos-05-launch-first-indian-geo-earth-observing-satellite Outlook India — 'Successfully and precisely injected': ISRO chairman hails GSLV-F17 launch — https://www.outlookindia.com/national/successfully-and-precisely-injected-isro-chairman-hails-gslv-f17-launch-eos-05-reaches-orbit Business Standard — ISRO launches India's first imaging satellite in geostationary orbit — https://www.business-standard.com/india-news/isro-launches-india-s-first-imaging-satellite-in-geostationary-orbit-126090400054_1.html Space.com — Rocket issues delay 1st-ever private mission to Venus — https://www.space.com/astronomy/venus/rocket-issues-delay-1st-ever-private-mission-to-venus-we-are-awaiting-neutron-readiness Syracuse University — The Spin Behind Fading Black Hole Flares — https://news.syr.edu/2026/09/01/the-spin-behind-fading-black-hole-flares/ arXiv — The Role of Stellar Spin in Repeating Partial Tidal Disruption Events (2606.02692) — https://arxiv.org/abs/2606.02692 NASA Science — What's Up: September 2026 Skywatching Tips — https://science.nasa.gov/solar-system/skywatching/whats-up-september-2026-skywatching-tips-from-nasa/ Universe Today — Lunar occultations of Jupiter, Venus and more in September — https://www.universetoday.com/articles/penultimate-lunar-occultations-inbound-for-jupiter-venus-and-more-in-september In-The-Sky.org — Lunar occultation of Jupiter, 8 September 2026 — https://in-the-sky.org/news.php?id=20260908_16_100 EarthSky — Sun news: flare, CME and aurora updates — https://earthsky.org/sun/sun-news-activity-solar-flare-cme-aurora-updates/ Space.com — Night sky September 2026: the best things to see this month — https://www.space.com/stargazing/what-to-see-night-sky-september-2026 Follow us: @AstroDailyPod · astronomydaily.io

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00:00:00 --> 00:00:03 Anna: Welcome back to Astronomy daily. It's Friday,

00:00:03 --> 00:00:06 September 4th, 2026. I'm

00:00:06 --> 00:00:09 Anna and this is series five, episode

00:00:09 --> 00:00:10 185.

00:00:11 --> 00:00:13 Avery: And I'm Avery. Anna.

00:00:13 --> 00:00:15 I want to start today with a number.

00:00:16 --> 00:00:17 2.6.

00:00:17 --> 00:00:20 Anna: 2.6 Sigma, which is not a

00:00:20 --> 00:00:21 discovery.

00:00:21 --> 00:00:23 Avery: M. You said that very fast.

00:00:24 --> 00:00:26 Anna: I said it fast because it's the most

00:00:26 --> 00:00:29 important sentence in the storey. But here's

00:00:29 --> 00:00:32 the rest of it. A dark matter detector a mile

00:00:32 --> 00:00:34 underground in South Dakota recorded a single

00:00:34 --> 00:00:37 flash of light in exactly the place a dark

00:00:37 --> 00:00:40 matter particle was supposed to show up. And

00:00:40 --> 00:00:42 the collaboration spent months trying to make

00:00:42 --> 00:00:45 that flash go away and could not do it.

00:00:46 --> 00:00:46 Avery: One event.

00:00:47 --> 00:00:49 Anna: One event. That's our lead.

00:00:50 --> 00:00:52 Including why we can't explain it. And

00:00:52 --> 00:00:55 we found dark matter are very different

00:00:55 --> 00:00:56 sentences.

00:00:57 --> 00:00:59 Avery: Then India has put its first imaging

00:00:59 --> 00:01:02 satellite into geostationary orbit. A,

00:01:02 --> 00:01:05 uh, real first and a capability nobody

00:01:05 --> 00:01:06 else in the region has.

00:01:07 --> 00:01:09 Anna: The first private mission to Venus has been

00:01:09 --> 00:01:12 grounded. Not by Venus, but by a

00:01:12 --> 00:01:14 rocket that hasn't flown yet.

00:01:14 --> 00:01:17 Avery: And a lovely piece of physics out of

00:01:17 --> 00:01:19 Syracuse. Why a star that keeps getting

00:01:19 --> 00:01:22 torn apart by a black hole puts on a fainter

00:01:22 --> 00:01:23 show every time.

00:01:24 --> 00:01:27 Anna: Plus the sky this weekend, both hemispheres

00:01:27 --> 00:01:29 and a new sunspot worth knowing about.

00:01:30 --> 00:01:31 Avery: Let's get into it.

00:01:32 --> 00:01:34 Start me at the beginning. Who announced what

00:01:35 --> 00:01:35 and where?

00:01:36 --> 00:01:39 Anna: The LZ collaboration, Lux Zeppelin,

00:01:39 --> 00:01:42 presented a result this week at TEV Particle

00:01:42 --> 00:01:45 Astrophysics 2026 in Chiba, Japan, which

00:01:45 --> 00:01:47 wraps up today. Brown University released it

00:01:47 --> 00:01:50 on Tuesday. The U.S. department of Energy has

00:01:50 --> 00:01:52 published its own account. And. And the paper

00:01:52 --> 00:01:54 has gone to Physical Review Letters.

00:01:55 --> 00:01:58 Avery: And LZ is the big Xenon one.

00:01:58 --> 00:02:01 Anna: LZ is the big Xenon one. 10

00:02:01 --> 00:02:04 tonnes of ultra pure liquid xenon in a tank

00:02:04 --> 00:02:06 at the Sanford Underground Research facility

00:02:06 --> 00:02:08 in Lead, South Dakota. That's the old home

00:02:08 --> 00:02:11 state gold mine. And the detector sits about

00:02:11 --> 00:02:14 a mile down, roughly 1480

00:02:14 --> 00:02:15 metres of rock overhead.

00:02:16 --> 00:02:17 Avery: Why underground?

00:02:18 --> 00:02:20 Anna: Because the enemy isn't darkness. It's noise.

00:02:21 --> 00:02:23 At the surface, you're rained on constantly

00:02:23 --> 00:02:26 by cosmic rays. A mile of rock filters

00:02:26 --> 00:02:28 nearly all of that out. Then they wrap the

00:02:28 --> 00:02:31 xenon in a water tank and a veto detector for

00:02:31 --> 00:02:33 stray neutrons and build it all from

00:02:33 --> 00:02:35 materials screened for radioactivity to

00:02:35 --> 00:02:38 absurd levels. The art of this field

00:02:38 --> 00:02:41 is subtraction. You spend 20 years

00:02:41 --> 00:02:43 removing every signal you can explain, then

00:02:43 --> 00:02:44 look at what's left.

00:02:45 --> 00:02:47 Avery: And what are they hoping is left?

00:02:47 --> 00:02:50 Anna: A, uh, wimp, weakly interacting massive

00:02:50 --> 00:02:53 particle. The leading dark matter candidate

00:02:53 --> 00:02:56 for about 40 years. A heavy particle left

00:02:56 --> 00:02:58 over from the early universe. That has mass,

00:02:58 --> 00:03:01 so it pulls on galaxies gravitationally, but

00:03:01 --> 00:03:03 ignores light and ignores ordinary matter.

00:03:03 --> 00:03:04 Almost all of the time.

00:03:05 --> 00:03:08 Avery: Almost all of the time being the operative

00:03:08 --> 00:03:08 phrase.

00:03:08 --> 00:03:11 Anna: That's the whole bet. If a WIMP occasionally

00:03:11 --> 00:03:14 bumps into an atomic nucleus, a big enough

00:03:14 --> 00:03:17 tub of xenon sitting quietly for long enough

00:03:17 --> 00:03:20 should eventually record one. The nucleus

00:03:20 --> 00:03:23 recoils and you get two flashes. A

00:03:23 --> 00:03:25 prompt one, then a second, from electrons

00:03:25 --> 00:03:28 drifting up through the liquid. Together they

00:03:28 --> 00:03:30 tell you where in the tank it happened and

00:03:30 --> 00:03:33 whether you hit a nucleus or just knocked an

00:03:33 --> 00:03:33 electron loose.

00:03:34 --> 00:03:36 Avery: Okay, tell me about the event.

00:03:37 --> 00:03:40 Anna: It's in data taken between March 2023

00:03:40 --> 00:03:42 and April 2024.

00:03:43 --> 00:03:45 220 live days. That

00:03:45 --> 00:03:48 dataset has been analysed before. LZ

00:03:48 --> 00:03:50 published world leading limits from it.

00:03:51 --> 00:03:53 What's new is that a team went back and

00:03:53 --> 00:03:55 searched a much wider range of possible

00:03:55 --> 00:03:58 interactions than the standard analysis

00:03:58 --> 00:04:00 covers, including higher energies.

00:04:00 --> 00:04:03 And one event turned up, uh, a nuclear

00:04:03 --> 00:04:05 recoil in a region where the expected

00:04:05 --> 00:04:07 background is very close to zero.

00:04:08 --> 00:04:10 Avery: Higher energy. Is that where you'd expect

00:04:10 --> 00:04:11 dark matter?

00:04:12 --> 00:04:15 Anna: No. And that's the first genuinely odd

00:04:15 --> 00:04:17 thing. The simplest WIMP models put your

00:04:17 --> 00:04:20 first signal at low energies. This is up the

00:04:20 --> 00:04:22 other end. Taken at face value, it points to

00:04:22 --> 00:04:25 a particle of at least 200 giga electron

00:04:25 --> 00:04:28 volts, more than 200 times the mass of a

00:04:28 --> 00:04:31 proton, interacting in a way the simplest

00:04:31 --> 00:04:32 models don't predict.

00:04:33 --> 00:04:35 Avery: So it's not the WIMP anyone ordered.

00:04:35 --> 00:04:38 Anna: It is not the WIMP anyone ordered.

00:04:38 --> 00:04:40 Which cuts both ways. And we'll come back to

00:04:40 --> 00:04:40 that.

00:04:41 --> 00:04:43 Avery: Give me the statistics. Honestly.

00:04:43 --> 00:04:46 Anna: 2.6- Sigma globally, 3.4-

00:04:46 --> 00:04:49 Sigma locally. And the difference between

00:04:49 --> 00:04:51 those two numbers is the most useful thing I

00:04:51 --> 00:04:52 can teach anyone today.

00:04:53 --> 00:04:54 Avery: Go on.

00:04:54 --> 00:04:57 Anna: LocalSignificants asks at this

00:04:57 --> 00:04:59 exact energy for this exact mass,

00:05:00 --> 00:05:02 how surprising is this event? Fairly

00:05:02 --> 00:05:05 surprising. Global significance asks the

00:05:05 --> 00:05:08 fairer question. I searched a whole range of

00:05:08 --> 00:05:11 masses and energies. So how surprising is it

00:05:11 --> 00:05:13 that somewhere in that range I found one odd

00:05:13 --> 00:05:16 thing? Account for the haystack and the

00:05:16 --> 00:05:19 surprise drops. That's the look elsewhere

00:05:19 --> 00:05:21 effect. Honest experiments quote both

00:05:22 --> 00:05:23 and LZ did

00:05:23 --> 00:05:26 Avery: M and 2.6 Sigma means what? In

00:05:26 --> 00:05:27 plain terms?

00:05:28 --> 00:05:30 Anna: Roughly a half a percent chance known

00:05:30 --> 00:05:32 backgrounds produced it. Which sounds

00:05:32 --> 00:05:34 compelling until you remember the bar.

00:05:35 --> 00:05:37 Particle physics calls something a discovery

00:05:37 --> 00:05:40 at five sigma, about one in three and

00:05:40 --> 00:05:43 a half million. 2.6 is nowhere near

00:05:43 --> 00:05:45 it. And physicists have watched three sigma

00:05:45 --> 00:05:47 results evaporate for decades.

00:05:48 --> 00:05:50 Avery: Did they try to kill it for months?

00:05:51 --> 00:05:54 Anna: Cosmic rays, neutrons from the rock,

00:05:54 --> 00:05:56 radioactivity in the detector materials,

00:05:57 --> 00:05:59 instrumental artefacts all modelled.

00:06:00 --> 00:06:02 Aaron Manalaise at Berkeley Lab, who chairs

00:06:02 --> 00:06:05 LZ's institutional board, said it's the first

00:06:05 --> 00:06:08 example in any experiment he's worked on of

00:06:08 --> 00:06:10 an outlier that appears valid in every way.

00:06:11 --> 00:06:12 That's a striking thing for an

00:06:12 --> 00:06:14 experimentalist to say out loud.

00:06:14 --> 00:06:16 Avery: What does the spokesperson say?

00:06:16 --> 00:06:18 Anna: Rick Gates, skull at Brown, is the

00:06:18 --> 00:06:20 spokesperson and he's been about as

00:06:20 --> 00:06:23 disciplined as you can be. His. His line

00:06:23 --> 00:06:25 with only one event. We don't want to get

00:06:25 --> 00:06:28 ahead of ourselves. We are not claiming to

00:06:28 --> 00:06:30 have seen dark matter and separately

00:06:30 --> 00:06:33 we're very intrigued to see this event in the

00:06:33 --> 00:06:35 data in the region where we expect dark

00:06:35 --> 00:06:37 matter to show up and the competing

00:06:37 --> 00:06:39 backgrounds are very low.

00:06:40 --> 00:06:41 Avery: Both things at once.

00:06:41 --> 00:06:43 Anna: Both things at once. And that's the correct

00:06:43 --> 00:06:46 posture. Sam Erickson at Bristol led the

00:06:46 --> 00:06:48 analysis and made the point that matters.

00:06:49 --> 00:06:51 Dark matter events are expected to be so rare

00:06:51 --> 00:06:53 that only a handful could mark the first

00:06:53 --> 00:06:56 detection. You can't dismiss one event for

00:06:56 --> 00:06:59 being single, but you can't build a discovery

00:06:59 --> 00:06:59 on it either.

00:07:00 --> 00:07:02 Avery: Is there a UK end um, to this?

00:07:02 --> 00:07:05 Anna: A significant one. Imperial College

00:07:05 --> 00:07:07 London did much of the work characterising

00:07:07 --> 00:07:10 the event and Henrique Araujo there put

00:07:10 --> 00:07:13 it beautifully. We need to analyse more data

00:07:13 --> 00:07:15 to be sure, but. But these are certainly

00:07:15 --> 00:07:16 interesting times.

00:07:16 --> 00:07:19 Avery: Now you promised the caveat about it not

00:07:19 --> 00:07:21 being the expected wimp.

00:07:21 --> 00:07:24 Anna: Two ways to read an unexpected signal.

00:07:24 --> 00:07:27 The generous one. Nature isn't obliged to

00:07:27 --> 00:07:30 be simple and 40 years of not finding dark

00:07:30 --> 00:07:32 matter may be exactly because we searched the

00:07:32 --> 00:07:35 tidiest places first. The unkind one,

00:07:36 --> 00:07:38 when a result lands where no model predicted,

00:07:38 --> 00:07:41 an unmodeled background is a very live

00:07:41 --> 00:07:44 explanation. The reason you haven't modelled

00:07:44 --> 00:07:45 it is that you didn't know it was there.

00:07:46 --> 00:07:48 Avery: Has this field been burned before?

00:07:49 --> 00:07:51 Anna: Repeatedly. DAMA in Italy has claimed an

00:07:51 --> 00:07:54 annual dark matter signal for over 20 years

00:07:54 --> 00:07:56 that nobody else can reproduce.

00:07:56 --> 00:07:59 Xenon1T reported an excess in 2020

00:07:59 --> 00:08:02 that caused enormous excitement and was most

00:08:02 --> 00:08:05 likely tritium contamination. A hydrogen

00:08:05 --> 00:08:07 isotope at a level almost too small to

00:08:07 --> 00:08:09 measure. That's the standard to hear this

00:08:09 --> 00:08:12 week against. To LZ's credit, they've

00:08:12 --> 00:08:14 published this as an anomaly, not a

00:08:14 --> 00:08:15 discovery.

00:08:15 --> 00:08:17 Avery: So what settles it?

00:08:17 --> 00:08:20 Anna: More xenon and more time. LZ has

00:08:20 --> 00:08:22 already banked substantially more data than

00:08:22 --> 00:08:25 went into this analysis and is running toward

00:08:25 --> 00:08:27 a thousand live days. If it's real,

00:08:27 --> 00:08:30 the rate is set by physics and more events

00:08:30 --> 00:08:33 follow. The significance climbs. If it's

00:08:33 --> 00:08:35 a fluke, it decays as exposure grows

00:08:35 --> 00:08:38 and A proposed successor, XLZD,

00:08:38 --> 00:08:41 would hold 10 times the xenon. This

00:08:41 --> 00:08:43 resolves itself in data, not argument.

00:08:44 --> 00:08:47 Avery: Southern hemisphere angle. Because dark

00:08:47 --> 00:08:49 matter feels like a Northern Hemisphere

00:08:49 --> 00:08:49 sport.

00:08:50 --> 00:08:52 Anna: It has been. And that's changing for a

00:08:52 --> 00:08:54 genuinely clever reason. There's now an

00:08:54 --> 00:08:57 underground lab in Australia, supl.

00:08:57 --> 00:09:00 The Stawell Underground Physics Laboratory, a

00:09:00 --> 00:09:02 kilometre down. A working gold mine in

00:09:02 --> 00:09:05 western Victoria. It's the first underground

00:09:05 --> 00:09:07 physics lab in the Southern hemisphere, built

00:09:07 --> 00:09:09 by the University of Melbourne with the ARC

00:09:09 --> 00:09:11 Centre of Excellence for Dark Matter Particle

00:09:11 --> 00:09:14 Physics and Ansto. And its first

00:09:14 --> 00:09:17 experiment, Sabre south, moves in late

00:09:17 --> 00:09:17 this year.

00:09:18 --> 00:09:20 Avery: And why does the hemisphere matter for dark

00:09:20 --> 00:09:21 matter of all things?

00:09:22 --> 00:09:25 Anna: Because of dama. Its claim is

00:09:25 --> 00:09:27 that the signal rises and falls once a year

00:09:28 --> 00:09:31 as Earth's motion around the sun adds to and

00:09:31 --> 00:09:33 subtracts from the solar system's motion

00:09:33 --> 00:09:36 through the galaxy's dark matter halo. The

00:09:36 --> 00:09:39 trouble is that plenty of ordinary things

00:09:39 --> 00:09:41 cycle annually too. Temperature,

00:09:41 --> 00:09:44 radon, cosmic ray rates. And

00:09:44 --> 00:09:47 in Italy they all peak in summer alongside

00:09:47 --> 00:09:48 the claimed signal.

00:09:48 --> 00:09:51 Avery: And in Victoria, the seasons are flipped.

00:09:51 --> 00:09:53 Anna: The seasons are flipped and the dark matter

00:09:53 --> 00:09:56 signal isn't. Run a near identical

00:09:56 --> 00:09:58 detector in the Southern hemisphere and a

00:09:58 --> 00:10:01 real galactic signal peaks in the same

00:10:01 --> 00:10:03 calendar month it does in Italy, while a

00:10:03 --> 00:10:05 seasonal artefact peaks six months out.

00:10:06 --> 00:10:08 Elegant piece of experiment design. And the

00:10:08 --> 00:10:10 only place on Earth you can do it is the one

00:10:10 --> 00:10:12 we happen to broadcast from.

00:10:13 --> 00:10:15 Avery: So what should people take away from today?

00:10:15 --> 00:10:18 Anna: Three things. LZ has found something it

00:10:18 --> 00:10:21 cannot explain in the right place and

00:10:21 --> 00:10:24 said so honestly. One event is one event and

00:10:24 --> 00:10:26 2.6 Sigma is a long way from a discovery.

00:10:27 --> 00:10:29 And the answer is already being collected.

00:10:29 --> 00:10:32 The detector is running right now. The honest

00:10:32 --> 00:10:34 headline is dark matter hunters find

00:10:34 --> 00:10:36 something they can't explain and refuse to

00:10:36 --> 00:10:39 overclaim it a good day for science, even if

00:10:39 --> 00:10:40 it isn't the day.

00:10:41 --> 00:10:43 Avery: On to our second storey today and this one

00:10:43 --> 00:10:45 is a genuine national first.

00:10:46 --> 00:10:49 Overnight, our time, 2:55 in the

00:10:49 --> 00:10:51 morning, Indian Standard Time on the 4th,

00:10:52 --> 00:10:54 which was 5:25 yesterday evening,

00:10:54 --> 00:10:57 US Eastern ISRO

00:10:57 --> 00:10:59 launched EOS05 on a

00:10:59 --> 00:11:02 GSLV Mark 2 out of Srihari

00:11:02 --> 00:11:03 Kota.

00:11:03 --> 00:11:06 Anna: And it's the orbit that's the storey, not the

00:11:06 --> 00:11:06 rocket.

00:11:07 --> 00:11:10 Avery: Exactly. EOS05

00:11:10 --> 00:11:12 is India's first dedicated imaging

00:11:12 --> 00:11:15 satellite headed for geosynchronous orbit.

00:11:16 --> 00:11:18 Everything India has flown for Earth

00:11:18 --> 00:11:20 observation until now has been in low

00:11:20 --> 00:11:23 orbit a few hundred kilometres up.

00:11:23 --> 00:11:25 Anna: Spell out the difference for people, a,

00:11:25 --> 00:11:28 Avery: uh, low orbit imaging satellite is a

00:11:28 --> 00:11:30 sprinter. It races around the planet in

00:11:30 --> 00:11:33 90 minutes and gives you a superb,

00:11:33 --> 00:11:36 very high resolution snapshot of a strip of

00:11:36 --> 00:11:39 ground and then it's gone. And you wait.

00:11:40 --> 00:11:42 Depending on the orbit, you might get another

00:11:42 --> 00:11:44 look in a day or, or several days.

00:11:45 --> 00:11:47 Anna: Whereas geostationary is a stair.

00:11:48 --> 00:11:49 Avery: Geostationary is a stair

00:11:50 --> 00:11:53 36 kilometres up, matching

00:11:53 --> 00:11:56 Earth's rotation. So from the ground, the

00:11:56 --> 00:11:58 satellite appears to hang motionless over the

00:11:58 --> 00:12:01 same piece of the planet permanently. You

00:12:01 --> 00:12:03 don't get a revisit time because you never

00:12:03 --> 00:12:04 leave.

00:12:04 --> 00:12:06 Anna: And that changes what you can use it for

00:12:06 --> 00:12:07 completely.

00:12:08 --> 00:12:11 Avery: Isro's framing is persistent

00:12:11 --> 00:12:13 coverage of the subcontinent and the

00:12:13 --> 00:12:15 applications are obvious once you say it that

00:12:15 --> 00:12:18 way. A, uh, cyclone forming in the Bay of

00:12:18 --> 00:12:20 Bengal. You watch it develop

00:12:20 --> 00:12:23 continuously instead of getting one frame a

00:12:23 --> 00:12:26 day. A flood, you see the water

00:12:26 --> 00:12:29 advance, a fire front, a landslide,

00:12:29 --> 00:12:31 a border. It's a dual use satellite,

00:12:32 --> 00:12:34 civil and military, and India hasn't been

00:12:34 --> 00:12:35 shy about that.

00:12:36 --> 00:12:38 Anna: There's a trade off though, surely there

00:12:38 --> 00:12:40 Avery: is, and it's worth being honest about it.

00:12:41 --> 00:12:43 You are imagining from a hundred times

00:12:43 --> 00:12:45 further away than a low orbit satellite,

00:12:46 --> 00:12:48 so the resolution is inevitably coarser.

00:12:49 --> 00:12:51 You are not reading number plates from

00:12:51 --> 00:12:53 geostationary orbit. What you're

00:12:53 --> 00:12:56 buying is time, not detail. And

00:12:56 --> 00:12:59 for disaster response, time is usually the

00:12:59 --> 00:13:00 thing you're short of.

00:13:01 --> 00:13:03 Anna: How did the launch go clean?

00:13:04 --> 00:13:05 Avery: The Spacecraft is about

00:13:05 --> 00:13:07 2

00:13:07 --> 00:13:10 kilogrammes, and ISRO chairman V

00:13:10 --> 00:13:13 Narayanan said it was successfully and

00:13:13 --> 00:13:15 precisely injected into its planned orbit.

00:13:16 --> 00:13:19 From here, EOS05 works

00:13:19 --> 00:13:21 its way up to its final station over the

00:13:21 --> 00:13:21 coming days.

00:13:22 --> 00:13:24 Anna: And the GSLV has had a mixed history.

00:13:25 --> 00:13:28 Avery: It has, which is part of why this matters to

00:13:28 --> 00:13:31 ISRO. The GSLV

00:13:31 --> 00:13:33 MK2 has now flown 12 times for

00:13:33 --> 00:13:36 10 successes. That's a vehicle that has

00:13:36 --> 00:13:39 visibly matured and it's the one carrying

00:13:39 --> 00:13:41 India's heavier missions to high orbit.

00:13:42 --> 00:13:43 Anna: Small country club.

00:13:43 --> 00:13:45 Avery: This very small,

00:13:45 --> 00:13:48 dedicated, high resolution imaging from

00:13:48 --> 00:13:50 geostationary orbit is a capability

00:13:51 --> 00:13:54 only a handful of nations have ever fielded.

00:13:54 --> 00:13:57 India has just joined that list and it did

00:13:57 --> 00:13:59 it with its own rocket from its own

00:13:59 --> 00:13:59 spaceport.

00:14:00 --> 00:14:03 Anna: Third storey, and it's a frustrating one. The

00:14:03 --> 00:14:05 first privately funded mission to another

00:14:06 --> 00:14:08 planet is still on the ground and it's going

00:14:08 --> 00:14:10 to stay there for a while yet.

00:14:10 --> 00:14:13 Avery: This is the Venus Life Finder.

00:14:13 --> 00:14:16 Anna: That's it. It's an MIT led mission

00:14:16 --> 00:14:19 driven by Sarah Seager, flying in partnership

00:14:19 --> 00:14:21 with Rocket Lab, and it is beautifully,

00:14:21 --> 00:14:24 almost aggressively simple. A small

00:14:24 --> 00:14:27 probe, one instrument, a few minutes of

00:14:27 --> 00:14:28 useful life.

00:14:29 --> 00:14:30 Avery: One instrument. That's it.

00:14:31 --> 00:14:33 Anna: One instrument. It's called an

00:14:33 --> 00:14:36 autofluorescence nifalometer, which is a

00:14:36 --> 00:14:38 mouthful for a fairly elegant idea. You

00:14:38 --> 00:14:40 fire an ultraviolet laser into the cloud

00:14:40 --> 00:14:43 droplets. As you fall through them, certain

00:14:43 --> 00:14:45 organic molecules absorb ultraviolet light

00:14:45 --> 00:14:47 and re emit it at a different wavelength.

00:14:48 --> 00:14:50 They fluoresce. So the instrument is looking

00:14:50 --> 00:14:53 for a glow that ordinary sulfuric acid

00:14:53 --> 00:14:54 chemistry shouldn't produce.

00:14:55 --> 00:14:57 Avery: And why the clouds, specifically?

00:14:58 --> 00:15:00 Anna: Because the surface of Venus is out of the

00:15:00 --> 00:15:02 question. 460 odd

00:15:02 --> 00:15:05 degrees, 90 atmospheres, but

00:15:05 --> 00:15:08 between about 45 and 60 kilometres up,

00:15:08 --> 00:15:10 the temperature and pressure are, uh, close

00:15:10 --> 00:15:12 to conditions at sea level on Earth.

00:15:13 --> 00:15:16 Extremely acidic, but not thermodynamically

00:15:16 --> 00:15:18 hopeless. That's the only plausible

00:15:18 --> 00:15:21 habitable niche on the planet. And it's what

00:15:21 --> 00:15:23 the 2020 phosphine claim put back on the

00:15:23 --> 00:15:26 table. A result that is still genuinely

00:15:26 --> 00:15:28 disputed and which this mission is designed

00:15:28 --> 00:15:30 to go and settle rather than argue about.

00:15:31 --> 00:15:33 Avery: So why isn't it flying?

00:15:34 --> 00:15:36 Anna: Neutron. The mission moved onto Rocket

00:15:36 --> 00:15:39 Lab's new medium lift rocket and Neutron

00:15:39 --> 00:15:42 hasn't flown yet. It was originally talked

00:15:42 --> 00:15:44 about for 2024, slipped to

00:15:44 --> 00:15:46 2026 and it's still in qualification.

00:15:47 --> 00:15:49 The launch date on Rocket Lab's own website

00:15:49 --> 00:15:51 now simply says to be confirmed.

00:15:52 --> 00:15:54 Avery: How is Seeger taking it?

00:15:54 --> 00:15:57 Anna: With more grace than I would. Her

00:15:57 --> 00:16:00 line was, we are awaiting neutron

00:16:00 --> 00:16:02 readiness. And she went on to say she

00:16:02 --> 00:16:04 continues to have high hopes for the mission

00:16:04 --> 00:16:07 and for its role in demonstrating what

00:16:07 --> 00:16:08 private enterprise can do in space

00:16:08 --> 00:16:09 exploration.

00:16:10 --> 00:16:12 Avery: There's an irony in there somewhere.

00:16:13 --> 00:16:15 Anna: There's a real one. The whole pitch of this

00:16:15 --> 00:16:17 mission was speed. That a small,

00:16:17 --> 00:16:20 focused, privately funded probe could go

00:16:20 --> 00:16:23 and answer one sharp question years before an

00:16:23 --> 00:16:26 agency flight could be approved, built and

00:16:26 --> 00:16:28 launched. And it's now waiting on launch

00:16:28 --> 00:16:31 capacity, which is the one part of the

00:16:31 --> 00:16:32 problem private industry was supposed to have

00:16:32 --> 00:16:33 solved.

00:16:33 --> 00:16:36 Avery: Meanwhile, Venus is getting crowded.

00:16:36 --> 00:16:39 Anna: It is. NASA's DaVinci and

00:16:39 --> 00:16:42 Veritas and Europe's Envision are all in

00:16:42 --> 00:16:43 the pipeline. For around the end of this

00:16:43 --> 00:16:46 decade, the Venus Life Finder was meant to be

00:16:46 --> 00:16:49 the scrappy one that got there first. And

00:16:49 --> 00:16:51 that lead is quietly evaporating on a launch

00:16:51 --> 00:16:52 pad in Virginia.

00:16:53 --> 00:16:55 Avery: Last news storey and it's pure

00:16:55 --> 00:16:58 astrophysics, published in the

00:16:58 --> 00:17:01 Astrophysical Journal on Tuesday, led by

00:17:01 --> 00:17:03 Ananya Bandopadhyay, a doctoral

00:17:03 --> 00:17:06 student at Syracuse University with Benjamin

00:17:06 --> 00:17:09 Amend and Eric Coughlin, plus collaborators

00:17:09 --> 00:17:12 at Leeds MIT and the Space

00:17:12 --> 00:17:14 Telescope Science Institute.

00:17:14 --> 00:17:17 Anna: And the puzzle is about stars that survive

00:17:17 --> 00:17:18 being eaten.

00:17:19 --> 00:17:22 Avery: Partly eaten. When a star wanders too

00:17:22 --> 00:17:24 close to a supermassive black hole and is

00:17:24 --> 00:17:27 ripped apart entirely, that's a tidal

00:17:27 --> 00:17:30 disruption event. One enormous flare

00:17:30 --> 00:17:32 and it's over. But there's a smaller

00:17:32 --> 00:17:35 class where the star is only partly stripped

00:17:35 --> 00:17:38 on each pass, survives and comes back

00:17:38 --> 00:17:38 around.

00:17:39 --> 00:17:42 Anna: So it flares over and over, over

00:17:42 --> 00:17:45 Avery: and over on a schedule. The

00:17:45 --> 00:17:48 Famous one is Assassin 14 Ko,

00:17:48 --> 00:17:51 which flares roughly every 114

00:17:51 --> 00:17:53 days and has done so for years.

00:17:54 --> 00:17:56 There are now something like seven or eight

00:17:56 --> 00:17:57 of these known.

00:17:58 --> 00:17:58 Anna: And what's the problem?

00:17:59 --> 00:18:02 Avery: The flares get dimmer each time. Which

00:18:02 --> 00:18:05 sounds intuitive. Less star left to strip.

00:18:05 --> 00:18:07 Except the simulations kept saying the

00:18:07 --> 00:18:10 opposite. Strip material from a star and

00:18:10 --> 00:18:13 it puffs up. And a puffier star is

00:18:13 --> 00:18:15 easier to strip next time round.

00:18:16 --> 00:18:18 Models kept producing flares that got

00:18:18 --> 00:18:21 brighter and the sky kept producing flares

00:18:21 --> 00:18:22 that got fainter.

00:18:22 --> 00:18:24 Anna: So what's the missing ingredient?

00:18:24 --> 00:18:27 Avery: Spin. This team ran

00:18:27 --> 00:18:29 hydrodynamic simulations of a high mass

00:18:29 --> 00:18:32 main sequence star being repeatedly

00:18:32 --> 00:18:34 disrupted by a black hole of about a million

00:18:34 --> 00:18:37 solar masses. And the key move was

00:18:37 --> 00:18:40 giving the star a fast rotation before the

00:18:40 --> 00:18:42 first encounter, spinning in the same

00:18:42 --> 00:18:44 direction as its orbit.

00:18:44 --> 00:18:46 Anna: Why does that change the outcome?

00:18:46 --> 00:18:48 Avery: Because ordinarily, the encounter itself

00:18:48 --> 00:18:51 spins the star up. And that spin up is

00:18:51 --> 00:18:53 part of what makes the next pass more

00:18:53 --> 00:18:56 violent. If the star arrives already

00:18:56 --> 00:18:59 rotating at a decent fraction of its breakup

00:18:59 --> 00:19:01 speed, there's very little extra spin to give

00:19:01 --> 00:19:04 it. The debris then falls back to the black

00:19:04 --> 00:19:07 hole, spread over a longer stretch of time

00:19:07 --> 00:19:10 instead of arriving in one lump. And the same

00:19:10 --> 00:19:13 material dribbling in over longer makes a

00:19:13 --> 00:19:15 fainter, more drawn out flare.

00:19:16 --> 00:19:18 Anna: Spread the fuel out and the fire is lower.

00:19:18 --> 00:19:21 Avery: That's it exactly. And with tens of

00:19:21 --> 00:19:23 percent of breakup rotation prograde,

00:19:24 --> 00:19:27 the simulations reproduce the dimming that's

00:19:27 --> 00:19:28 actually observed.

00:19:28 --> 00:19:30 Anna: Does it tell us anything about how the star

00:19:30 --> 00:19:31 got there in the first place?

00:19:32 --> 00:19:35 Avery: It does. And that's the bonus. A

00:19:35 --> 00:19:38 fast spinning star on a tight orbit around a

00:19:38 --> 00:19:40 supermassive black hole fits the Hill's

00:19:40 --> 00:19:43 mechanism. A, uh, binary pair strays too

00:19:43 --> 00:19:46 close. The black hole keeps one star

00:19:46 --> 00:19:49 and flings the other away at enormous speed.

00:19:50 --> 00:19:52 The captured one lands exactly where you need

00:19:52 --> 00:19:55 it. So the spin isn't an arbitrary

00:19:55 --> 00:19:58 knob. It's a fingerprint of how these systems

00:19:58 --> 00:19:58 get built.

00:19:59 --> 00:20:02 Anna: Right, let's get you outside. And the Moon is

00:20:02 --> 00:20:03 doing us a favour this weekend.

00:20:04 --> 00:20:05 Avery: Last quarter today.

00:20:06 --> 00:20:08 Anna: Last quarter today. September 4th. Which

00:20:08 --> 00:20:10 means it doesn't rise until around midnight.

00:20:10 --> 00:20:13 So. So the entire evening is dark. If you

00:20:13 --> 00:20:15 have been waiting for a night to actually

00:20:15 --> 00:20:17 look at something faint, this is the weekend.

00:20:18 --> 00:20:19 Avery: Southern hemisphere first.

00:20:20 --> 00:20:22 Anna: Southern hemisphere first because we get the

00:20:22 --> 00:20:25 best of it from Sydney. The sun sets about 20

00:20:25 --> 00:20:27 to 6 now, and once it's properly Dark. The

00:20:27 --> 00:20:29 centre of the Milky Way is high overhead.

00:20:30 --> 00:20:32 Sagittarius and Scorpius almost directly

00:20:32 --> 00:20:35 above you. From mid southern latitudes, the

00:20:35 --> 00:20:38 galactic core passes near the zenith, so

00:20:38 --> 00:20:39 you're looking through the least possible

00:20:39 --> 00:20:42 atmosphere. Northern listeners get the same

00:20:42 --> 00:20:44 object low and murky above the southern

00:20:44 --> 00:20:47 horizon. It's the one thing we can be smug

00:20:47 --> 00:20:50 about. And September is the last good month

00:20:50 --> 00:20:51 before it sinks westward.

00:20:51 --> 00:20:53 Avery: What do you actually look at?

00:20:53 --> 00:20:56 Anna: Find the teapot of Sagittarius with the naked

00:20:56 --> 00:20:59 eye and let your eye drift up out of the

00:20:59 --> 00:21:01 spout. That steam is the galactic

00:21:01 --> 00:21:04 centre. Binoculars turn it into star clouds

00:21:04 --> 00:21:07 and dark lanes. And the Lagoon Nebula is

00:21:07 --> 00:21:09 sitting right there, along with a dozen

00:21:09 --> 00:21:10 globular clusters.

00:21:11 --> 00:21:12 Avery: Planets.

00:21:12 --> 00:21:15 Anna: Venus in the west after sunset. Brilliant,

00:21:15 --> 00:21:18 unmistakable. Low and building toward

00:21:18 --> 00:21:20 greatest Brilliancy on the 18th.

00:21:20 --> 00:21:23 Saturn is up most of the night in Aquarius,

00:21:23 --> 00:21:25 climbing toward opposition on October 4th.

00:21:25 --> 00:21:28 And from here it passes far higher overhead

00:21:28 --> 00:21:30 than it does for northern observers.

00:21:30 --> 00:21:31 Avery: Pre dawn.

00:21:32 --> 00:21:35 Anna: Jupiter is the predawn showpiece, well up in

00:21:35 --> 00:21:37 the east before sunrise. And on Sunday

00:21:37 --> 00:21:40 morning the 6th, Mars sits just a few

00:21:40 --> 00:21:43 degrees below a thin, waning crescent Moon.

00:21:43 --> 00:21:45 That's a lovely one for a phone camera if

00:21:45 --> 00:21:46 you're up early.

00:21:47 --> 00:21:49 Avery: Now North America, because there's a proper

00:21:49 --> 00:21:50 event coming.

00:21:50 --> 00:21:53 Anna: On Tuesday the 8th, the moon occults

00:21:53 --> 00:21:56 Jupiter. The planet passes behind the

00:21:56 --> 00:21:58 lunar disc. The footprint favours

00:21:58 --> 00:22:01 northeastern Asia, where it happens in the

00:22:01 --> 00:22:04 dawn sky, and eastern North America

00:22:04 --> 00:22:06 where it happens after sunrise in broad

00:22:06 --> 00:22:08 daylight. Daylight,

00:22:09 --> 00:22:11 daylight. Which brings us to the standing

00:22:11 --> 00:22:13 reminder. And it applies directly here.

00:22:14 --> 00:22:16 If you are observing anywhere near the sun,

00:22:16 --> 00:22:19 hunting for Jupiter in a bright sky or

00:22:19 --> 00:22:21 looking at the sunspot. I'm about to mention

00:22:21 --> 00:22:24 any filter you use for direct solar viewing

00:22:25 --> 00:22:26 must be certified to the ISO

00:22:26 --> 00:22:29 123122 standard.

00:22:30 --> 00:22:32 Not sunglasses, not welding glass of unknown

00:22:32 --> 00:22:35 grade, not smoked glass, not a phone screen.

00:22:35 --> 00:22:36 ISO

00:22:36 --> 00:22:39


00:22:39 --> 00:22:41 and cheque. The certification is real.

00:22:41 --> 00:22:44 Sweeping binoculars or a telescope across a

00:22:44 --> 00:22:46 daylight sky is exactly the situation where

00:22:46 --> 00:22:49 people injure themselves permanently and it

00:22:49 --> 00:22:50 takes a fraction of a second.

00:22:51 --> 00:22:53 Avery: And the day after there's one for us.

00:22:53 --> 00:22:56 Anna: M the ninth, the Moon occults

00:22:56 --> 00:22:59 Regulus, the brightest star in Leo. And

00:22:59 --> 00:23:01 that footprint runs across the South Pacific.

00:23:01 --> 00:23:04 New Caledonia, best placed. Not Australia,

00:23:04 --> 00:23:07 unfortunately. But if you're in that track, a

00:23:07 --> 00:23:09 first magnitude star vanishing off the edge

00:23:09 --> 00:23:11 of the Moon is one of the sharpest things

00:23:11 --> 00:23:14 you'll ever see. Instantaneous.

00:23:14 --> 00:23:17 Avery: You mentioned a Sunspot, a new one,

00:23:17 --> 00:23:20 Anna: Active Region 4524, which

00:23:20 --> 00:23:23 rotated into view over the northeastern limb

00:23:23 --> 00:23:25 this week and has been busy. It fired an M

00:23:25 --> 00:23:28 M3 flare peaking at 19:20 Universal

00:23:28 --> 00:23:31 Time on Wednesday the 2nd, plus a stack of

00:23:31 --> 00:23:34 smaller ones. The coronal mass ejection from

00:23:34 --> 00:23:37 that flare isn't aimed at us, but a filament

00:23:37 --> 00:23:39 eruption the same day threw out material that

00:23:39 --> 00:23:41 may deliver a glancing blow around Monday the

00:23:41 --> 00:23:43 7th. Aurora chances

00:23:44 --> 00:23:47 modest and honest quiet conditions through

00:23:47 --> 00:23:49 the weekend, so nothing to promise tonight or

00:23:49 --> 00:23:52 Saturday. Monday is the one to watch. And if

00:23:52 --> 00:23:54 anything comes of it, the people with a shot

00:23:54 --> 00:23:56 are Tasmania and southern New Zealand down

00:23:56 --> 00:23:58 here and the northern tier of the us, Canada

00:23:58 --> 00:24:01 and Scotland up there. Watch the space

00:24:01 --> 00:24:03 weather feeds rather than the headlines.

00:24:03 --> 00:24:05 Avery: And one for northern observers with

00:24:05 --> 00:24:06 binoculars.

00:24:07 --> 00:24:09 Anna: The Double Cluster in Perseus. Two open

00:24:09 --> 00:24:12 clusters side by side in the same binocular

00:24:12 --> 00:24:15 field. Naked eye. It's a smudge in

00:24:15 --> 00:24:17 binoculars. It's one of the best sights in

00:24:17 --> 00:24:20 the sky and a moonless evening is exactly

00:24:20 --> 00:24:21 when to try it.

00:24:21 --> 00:24:24 Avery: And that's episode 185.

00:24:24 --> 00:24:27 A dark matter detector a mile underground

00:24:27 --> 00:24:30 has recorded one flash of light it cannot

00:24:30 --> 00:24:33 explain and has been admirably careful

00:24:33 --> 00:24:35 about what that does and and doesn't mean.

00:24:36 --> 00:24:38 Anna: India has put its first imaging satellite on

00:24:38 --> 00:24:41 station over the subcontinent. The first

00:24:41 --> 00:24:43 private mission to Venus is stuck waiting on

00:24:43 --> 00:24:46 a rocket that hasn't flown. And a star that

00:24:46 --> 00:24:48 keeps surviving a black hole shines a little

00:24:48 --> 00:24:51 fainter each time because of how fast it was

00:24:51 --> 00:24:51 already spinning.

00:24:52 --> 00:24:55 Avery: Full show notes, links to every primary

00:24:55 --> 00:24:57 source and the whole back catalogue are, uh,

00:24:57 --> 00:24:59 @astronomydaily.IO.

00:25:00 --> 00:25:02 Anna: you can find us on X Instagram and

00:25:02 --> 00:25:04 TikTok Strodaily pod.

00:25:05 --> 00:25:07 And if you've got a question or a correction,

00:25:07 --> 00:25:10 we genuinely want it. There's a contact form

00:25:10 --> 00:25:10 on the website.

00:25:12 --> 00:25:14 Avery: And if today's episode was useful, the single

00:25:14 --> 00:25:17 most helpful thing you can do is send it to

00:25:17 --> 00:25:18 one person who'd enjoy it.

00:25:19 --> 00:25:21 Anna: It's the weekend. Get outside and look up

00:25:21 --> 00:25:22 while the Moon's out of the way.

00:25:23 --> 00:25:24 Until tomorrow. Clear skies.

00:25:24 --> 00:25:25 Avery: Clear skies.

00:25:26 --> 00:25:27 Anna: Astronomy Day

00:25:29 --> 00:25:30 storeys

00:25:32 --> 00:25:32 the.

00:25:37 --> 00:25:37 Storey.